[0001] The present invention is related to papermaking, and more particularly, to a method
for making a wet pressed tissue paper web.
BACKGROUND OF THE INVENTION
[0002] Disposable products such as facial tissue, sanitary tissue, paper towels, and the
like are typically made from one or more webs of paper. If the products are to perform
their intended tasks, the paper webs from which they are formed must exhibit certain
physical characteristics. Among the more important of these characteristics are strength,
softness, and absorbency. Strength is the ability of a paper web to retain its physical
integrity during use. Softness is the pleasing tactile sensation the user perceives
as the user crumples the paper in his or her hand and contacts various portions of
his or her anatomy with the paper web. Softness generally increases as the paper web
stiffness decreases. Absorbency is the characteristic of the paper web which allows
it to take up and retain fluids. Typically, the softness and/or absorbency of a paper
web is increased at the expense of the strength of the paper web. Accordingly, papermaking
methods have been developed in an attempt to provide soft and absorbent paper webs
having desirable strength characteristics.
[0003] U.S. Patent 3,301,746 issued to Sanford et al. discloses a paper web which is thermally
pre-dried with a through air-drying system. Portions of the web are then impacted
with a fabric knuckle pattern at the dryer drum. While the process of Sanford et al.
is directed to providing improved softness and absorbency without sacrificing tensile
strength, water removal using the through-air dryers of Sanford et al. is very energy
intensive, and therefore expensive.
[0004] U.S. Patent 3,537,954 issued to Justus discloses a web formed between an upper fabric
and a lower forming wire. A pattern is imparted to the web at a nip where the web
is sandwiched between the fabric and a relatively soft and resilient papermaking felt.
U.S. Patent 4,309,246 issued to Hulit et al. discloses delivering an uncompacted wet
web to an open mesh imprinting fabric formed of woven elements, and pressing the web
between a papermaker's felt and the imprinting fabric in a first press nip. The web
is then carried by the imprinting fabric from the first press nip to a second press
nip at a drying drum. U.S. Patent 4,144,124 issued to Turunen et al. discloses a paper
machine having a twin-wire former having a pair of endless fabrics, which can be felts.
One of the endless fabrics carries a paper web to a press section.
[0005] The press section can include the endless fabric which carries the paper web to the
press section an additional endless fabric which can be a felt, and a wire for pattern
embossing the web.
[0006] Both Justus and Hulit et al. suffer from the disadvantage that they press a wet web
in a nip having only one felt. During pressing of the web, water will exit both sides
of the web. Accordingly, water exiting the surface of the web which is not in contact
with a felt can re-enter the web at the exit of the press nip. Such re-wetting of
the web at the exit of the press nip reduces the water removal capability of the press
arrangement, disrupts fiber-to-fiber bonds formed during pressing, and can result
in rebulking of the portions of the web which are densified in the press nip.
[0007] Turunen et al. discloses a press nip which includes two endless fabrics, which can
be felts, and an imprinting wire. However, Turunen et al. does not transfer the web
from a forming wire to an imprinting fabric to provide initial deflection of portions
of the wet web into the imprinting fabric prior to pressing the web in the press nip.
The web in Turunen can therefore be generally monoplanar at the entrance to the press
nip, resulting in overall compaction of the web in the press nip. Overall compaction
of the web is undesirable because it limits the difference in density between different
portions of the web by increasing the density of relatively low density portions of
the web.
[0008] In addition, Hulit et al., and Turunen et al. provide press arrangements wherein
the imprinting fabric has discrete compaction knuckles, such as at the warp and weft
crossover points of woven filaments. Discrete compacted sites do not provide a wet
molded sheet having a continuous high density region for carrying loads and discrete
low density regions for providing absorbency.
[0009] Embossing can also be used to impart bulk to a web. However, embossing of a dried
web can result in disruption of bonds between fibers in the web. This disruption occurs
because the bonds are formed and then set upon drying of the web. After the web is
dried, moving fibers normal to the plane of the web disrupts fiber to fiber bonds,
which in turn results in a web having less tensile strength than existed before embossing.
[0010] WO 95/17548 describes a method for molding and dewatering a paper web consisting
in forming an embryonic web of paper making fibers on a foraminous forming member,
transferring it to an imprinting member and pressing the web and the imprinting member
between first and second dewatering felts between compression roll.
[0011] The following references disclose embossing: European Patent Application 0499942A2,
U.S. Patent 3,556,907, U.S. Patent 3,867,225, U.S. Patent 3,414,459, and U.S. Patent
4,759,967.
[0012] As a result, paper scientists continue to search for improved paper structures that
can be produced economically, and which provide increased strength without sacrificing
softness and absorbency.
[0013] Accordingly, it is an object of the present invention to provide a method for dewatering
and molding a paper web.
[0014] It is another object of the present invention to provide initial deflection of a
portion of a paper web into an imprinting member, and subsequently pressing the resulting
non-monoplanar web and the imprinting member between two deformable water receiving
members in a press nip having an extended nip length.
[0015] Another object of the present invention is to provide a wet pressed paper web having
increased strength for a given level of sheet flexibility.
[0016] Another object of the present invention is to provide a non-embossed patterned paper
web having a relatively high density continuous network, a plurality of relatively
low density domes dispersed throughout the continuous network, and a reduced thickness
transition region at least partially encircling each of the low density domes.
SUMMARY OF THE INVENTION
[0017] The present invention provides a method for molding and dewatering a paper web. According
to one embodiment of the present invention, an embryonic web of papermaking fibers
is formed on a foraminous forming member, and transferred to an imprinting member
to deflect a portion of the papermaking fibers in the embryonic web into deflection
conduits in the imprinting member without densifying the embryonic web. The web and
the imprinting member are then pressed between first and second dewatering felts in
a compression nip to further deflect the papermaking fibers into the deflection conduits
in the imprinting member and to remove water from both sides of the web. The compression
nip has an extended nip length, the nip length being at least about 3.0 inches in
the machine direction. The compression nip is formed between opposed compression surfaces.
In a preferred embodiment, the compression nip is formed by a press having convex
and concave opposed compression surfaces.
[0018] The method of the present invention comprises the steps of:
forming an embryonic web of the papermaking fibers on a foraminous forming member,
the embryonic web having a first face and a second face;
transferring the embryonic web from the foraminous forming member to an imprinting
member to position the second face of the embryonic web adjacent a web contacting
face of the foraminous imprinting member;
deflecting a portion of the papermaking fibers in the embryonic web into a deflection
conduit portion and removing water from the embryonic web through the deflection conduit
portion to form an uncompacted, non-monoplanar intermediate web of the papermaking
fibers; and
pressing the web in a compression nip having a machine direction length of at least
about 7.6 cm (about 3.0 inches) wherein a first felt layer is positioned adjacent
the first face of the intermediate web, wherein the web imprinting surface is positioned
adjacent the second face of the intermediate web, and wherein the deflection conduit
portion is in flow communication with a second felt layer.
[0019] In one embodiment, the step of pressing the intermediate web comprises pressing the
intermediate web in a compression nip having a machine direction length of between
about 7.6 cm to about 50.8 cm (about 3.0 to about 20.0 inches) and more preferably
between about 10.2 cm and about 25.4 cm (about 4.0 and about 10.0 inches).
[0020] The step of pressing the intermediate web can comprise pressing the intermediate
web at a nip loading of between about 180 kg (400 pounds) per lineal 2.54 cm (inch)
of cross machine direction nip width and about 4536 kg (10000 pounds) per lineal 2.54
cm (inch) of cross machine direction nip width.
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] While the specification concludes with claims particularly pointing out and distinctly
claiming the present invention, the invention will be better understood from the following
description taken in conjunction with the accompanying drawings in which:
- Figure 1
- is a schematic representation of one embodiment of a continuous papermaking machine
illustrating transferring a paper web from a foraminous forming member to a foraminous
imprinting member, carrying the paper web on the foraminous imprinting member to a
compression nip, and pressing the web carried on the foraminous imprinting member
between first and second dewatering felts in the compression nip.
- Figure 2
- is a schematic illustration of a plan view of a foraminous imprinting member having
a first web contacting face comprising a macroscopically monoplanar, patterned continuous
network web imprinting surface defining within the foraminous imprinting member a
plurality of discrete, isolated, non connecting deflection conduits.
- Figure 3
- is a cross-sectional view of a portion of the foraminous imprinting member shown in
Figure 2 as taken along line 3-3.
- Figure 4
- is an enlarged schematic illustration of the compression nip shown in Figure 1, showing
a first dewatering felt positioned adjacent a first face of the web, the web contacting
face of the foraminous imprinting member positioned adjacent the second face of the
web, and a second dewatering felt positioned adjacent the second felt contacting face
of the foraminous imprinting member, wherein the compression nip comprises opposed
convex and concave compression surfaces.
- Figure 5
- is a schematic illustration of a compression nip according to an alternative embodiment
of the invention, wherein the paper web is positioned between a first dewatering felt
and a composite imprinting member comprising a foraminous web patterning layer formed
from a photopolymer joined to the surface of a second dewatering felt, and wherein
the web, the first felt, and the composite imprinting member are positioned between
opposed convex and concave compression surfaces in the compression nip.
- Figure 6
- is a schematic illustration of a plan view of a molded paper web formed using the
foraminous imprinting member of Figures 2 and 3.
- Figure 7
- is a schematic cross-sectional illustration of the paper web of Figure 6 taken along
line 7-7 of Figure 6.
- Figure 8
- is an enlarged view of the cross-section of the paper web shown in Figure 7.
- Figure 9
- is an alternative embodiment of a paper machine according to the present invention
using the compression nip configuration shown in Figure 5 and having a composite imprinting
member comprising a foraminous web patterning layer formed from a photopolymer joined
to the surface of a dewatering felt layer.
- Figure 10
- is a schematic illustration of a cross-section of a composite imprinting member.
- Figure 11
- is a schematic illustration of a plan view of a foraminous imprinting member having
a web contacting face comprising a continuous, patterned deflection conduit and a
plurality of discrete, isolated web imprinting surfaces.
- Figure 12
- is a schematic illustration of a plan view of a foraminous imprinting member having
a semi-continuous web imprinting surface.
DETAILED DESCRIPTION OF THE INVENTION
[0022] Figure 1 illustrates one embodiment of a continuous papermaking machine which can
be used in practicing the present invention. The process of the present invention
comprises a number of steps or operations which occur in sequence. While the process
of the present invention is preferably carried out in a continuous fashion, it will
be understood that the present invention can comprise a batch operation, such as a
handsheet making process. A preferred sequence of steps will be described, with the
understanding that the scope of the present invention is determined with reference
to the appended claims.
[0023] According to one embodiment of the present invention, an embryonic web 120 of papermaking
fibers is formed from an aqueous dispersion of papermaking fibers on a foraminous
forming member 11. The embryonic web 120 is then transferred to a foraminous imprinting
member 219 having a first web contacting face 220 comprising a web imprinting surface
and a deflection conduit portion. A portion of the papermaking fibers in the embryonic
web 120 are deflected into the deflection conduit portion of the foraminous imprinting
member 219 without densifying the web, thereby forming an intermediate web 120A.
[0024] The intermediate web 120A is carried on the foraminous imprinting member 219 from
the foraminous forming member 11 to a compression nip 300 having a machine direction
length of at least about 7.6 cm (3.0 inches). The nip 300 has opposed compression
surfaces. The opposed compression surfaces can be opposed convex and concave compression
surfaces, with the convex compression surface being provided by a press roll 362 and
the opposed concave compression surface being provided by a shoe press assembly 700.
[0025] A first dewatering felt 320 is positioned adjacent the intermediate web 120A, and
a second dewatering felt 360 is positioned adjacent the foraminous imprinting member
219. The intermediate web 120A and the foraminous imprinting member 219 are then pressed
between the first and second dewatering felts 320 and 360 in the compression nip 300
to further deflect a portion of the papermaking fibers into the deflection conduit
portion of the imprinting member 219; to densify a portion of the intermediate web
120A associated with the web imprinting surface; and to further dewater the web by
removing water from both sides of the web, thereby forming a molded web 120B which
is relatively dryer than the intermediate web 120A.
[0026] The molded web 120B is carried from the compression nip 300 on the foraminous imprinting
member 219. The molded web 120B can be pre-dried in a through air dryer 400 by directing
heated air to pass first through the molded web, and then through the foraminous imprinting
member 219, thereby further drying the molded web 120B. The web imprinting surface
of the foraminous imprinting member 219 can then be impressed into the molded web
120B such as at a nip formed between a roll 209 and a dryer drum 510, thereby forming
an imprinted web 120C Impressing the web imprinting surface into the molded web can
further density the portions of the web associated with the web imprinting surface.
The imprinted web 120C can then be dried on the dryer drum 510 and creped from the
dryer drum by a doctor blade 524.
[0027] Examining the process steps according to the present invention in more detail, a
first step in practicing the present invention is providing an aqueous dispersion
of papermaking fibers derived from wood pulp to form the embryonic web 120. The papermaking
fibers utilized for the present invention will normally include fibers derived from
wood pulp. Other cellulosic fibrous pulp fibers, such as cotton linters, bagasse,
etc., can be utilized and are intended to be within the scope of this invention. Synthetic
fibers, such as rayon, polyethylene and polypropylene fibers, may also be utilized
in combination with natural cellulosic fibers. One exemplary polyethylene fiber which
may be utilized is Pulpex™, available from Hercules, Inc. (Wilmington, Delaware).
Applicable wood pulps include chemical pulps, such as Kraft, sulfite, and sulfate
pulps, as well as mechanical pulps including, for example, groundwood, thermomechanical
pulp and chemically modified thermomechanical pulp. Pulps derived from both deciduous
trees (hereinafter, also referred to as "hardwood") and coniferous trees (hereinafter,
also referred to as "softwood") may be utilized. Also applicable to the present invention
are fibers derived from recycled paper, which may contain any or all of the above
categories as well as other non-fibrous materials such as fillers and adhesives used
to facilitate the original papermaking.
[0028] In addition to papermaking fibers, other components or materials may be added to
the papermaking furnish. The types of additives desirable will be dependent upon the
particular end use of the tissue sheet contemplated. For example, in products such
as toilet paper, paper towels, facial tissues and other similar products, high wet
strength is a desirable attribute. Thus, it is often desirable to add to the papermaking
furnish chemical substances known in the art as "wet strength" resins.
[0029] A general dissertation on the types of wet strength resins utilized in the paper
art can be found in TAPPI monograph series No. 29, Wet Strength in Paper and Paperboard,
Technical Association of the Pulp and Paper Industry (New York, 1965). The most useful
wet strength resins have generally been cationic in character. Polyamide-epichlorohydrin
resins are cationic wet strength resins which have been found to be of particular
utility. Suitable types of such resins are described in U.S. Patent Nos. 3,700,623,
issued on October 24, 1972, and 3,772,076, issued on November 13, 1973, both issued
to Keim and both being hereby incorporated by reference. One commercial source of
a useful polyamide-epichlorohydrin resins is Hercules, Inc. of Wilmington, Delaware,
which markets such resin under the mark Kymene™ 557H.
[0030] Polyacrylamide resins have also been found to be of utility as wet strength resins.
These resins are described in U.S. Patent Nos. 3,556,932, issued on January 19, 1971,
to Coscia, et al. and 3,556,933, issued on January 19, 1971, to Williams et al., both
patents being incorporated herein by reference. One commercial source of polyacrylamide
resins is American Cyanamid Co. of Stanford, Connecticut, which markets one such resin
under the mark Parez™ 631 NC.
[0031] Still other water-soluble cationic resins finding utility in this invention are urea
formaldehyde and melamine formaldehyde resins. The more common functional groups of
these polyfunctional resins are nitrogen containing groups such as amino groups and
methylol groups attached to nitrogen. Polyethylenimine type resins may also find utility
in the present invention. In addition, temporary wet strength resins such as Caldas
10 (manufactured by Japan Carlit) and CoBond 1000 (manufactured by National Starch
and Chemical Company) may be used in the present invention. It is to be understood
that the addition of chemical compounds such as the wet strength and temporary wet
strength resins discussed above to the pulp furnish is optional and is not necessary
for the practice of the present development.
[0032] The embryonic web 120 is preferably prepared from an aqueous dispersion of the papermaking
fibers, though dispersions of the fibers in liquids other than water can be used.
The fibers are dispersed in water to form an aqueous dispersion having a consistency
of from about 0.1 to about 0.3 percent. The percent consistency of a dispersion, slurry,
web, or other system is defined as 100 times the quotient obtained when the weight
of dry fiber in the system under discussion is divided by the total weight of the
system. Fiber weight is always expressed on the basis of bone dry fibers.
[0033] A second step in the practice of the present invention is forming the embryonic web
120 of papermaking fibers. Referring to Figure 1, an aqueous dispersion of papermaking
fibers is provided to a headbox 18 which can be of any convenient design. From the
headbox 18 the aqueous dispersion of papermaking fibers is delivered to a foraminous
forming member 11 to form an embryonic web 120. The forming member 11 can comprise
a continuous Fourdrinier wire. Alternatively, the foraminous forming member 11 can
comprise a plurality of polymeric protuberances joined to a continuous reinforcing
structure to provide an embryonic web 120 having two or more distinct basis weight
regions, such as is disclosed in U.S Patent 5,245,025 issued September 14, 1993 to
Trokhan et al, which patent is incorporated herein by reference. While a single forming
member 11 is shown in Figure 1, single or double wire forming apparatus may be used.
Other forming wire configurations, such as S or C wrap configurations can be used.
[0034] The forming member 11 is supported by a breast roll 12 and plurality of return rolls,
of which only two return rolls 13 and 14 are shown in Figure 1. The forming member
11 is driven in the direction indicated by the arrow 81 by a drive means not shown.
The embryonic web 120 is formed from the aqueous dispersion of papermaking fibers
by depositing the dispersion onto the foraminous forming member 11 and removing a
portion of the aqueous dispersing medium. The embryonic web 120 has a first web face
122 contacting the foraminous member 11 and a second oppositely facing web face 124.
[0035] The embryonic web 120 can be formed in a continuous papermaking process, as shown
in Figure 1, or alternatively, a batch process, such as a handsheet making process
can be used. After the aqueous dispersion of papermaking fibers is deposited onto
the foraminous forming member 11, the embryonic web 120 is formed by removal of a
portion of the aqueous dispersing medium by techniques well known to those skilled
in the art. Vacuum boxes, forming boards, hydrofoils, and the like are useful in effecting
water removal from the aqueous dispersion on the foraminous forming member 11. The
embryonic web 120 travels with the forming member 11 about the return roll 13 and
is brought into the proximity of a foraminous imprinting member 219.
[0036] The foraminous imprinting member 219 has a first web contacting face 220 and a second
felt contacting face 240. The web contacting face 220 has a web imprinting surface
222 and a deflection conduit portion 230, as shown in Figures 2 and 3. The deflection
conduit portion 230 forms at least a portion of a continuous passageway extending
from the first face 220 to the second face 240 for carrying water through the foraminous
imprinting member 219. Accordingly, when water is removed from the web of papermaking
fibers in the direction of the foraminous imprinting member 219, the water can be
disposed of without having to again contact the web of papermaking fibers. The foraminous
imprinting member 219 can comprise an endless belt, as shown in Figure 1, and can
be supported by a plurality of rolls 201-217. The foraminous imprinting member 219
is driven in the direction 281 (corresponding to the machine direction) shown in Figure
1 by a drive means (not shown). The first web contacting face 220 of the foraminous
imprinting member 219 can be sprayed with an emulsion comprising about 90 percent
by weight water, about 8 percent petroleum oil, about 1 percent cetyl alcohol, and
about 1 percent of a surfactant such as Adogen TA-100. Such an emulsion facilitates
transfer of the web from the imprinting member 219 to the drying drum 510. Of course,
it will be understood that the foraminous imprinting member 219 need not comprise
an endless belt if used in making handsheets in a batch process.
[0037] In the embodiment shown in Figures 2 and 3, the first web contacting face 220 of
the foraminous imprinting member 219 comprises a macroscopically monoplanar, patterned,
continuous network web imprinting surface 222. The continuous network web imprinting
surface 222 defines within the foraminous imprinting member 219 a plurality of discrete,
isolated, non-connecting deflection conduits 230. The deflection conduits 230 have
openings 239 which can be random in shape and in distribution, but which are preferably
of uniform shape and distributed in a repeating, preselected pattern on the first
web contacting face 220. Such a continuous network web imprinting surface 222 and
discrete deflection conduits 230 are useful for forming a paper structure having a
continuous, relatively high density network region 1083 and a plurality of relatively
low density domes 1084 dispersed throughout the continuous, relatively high density
network region 1083, as shown in Figures 6 and 7.
[0038] Suitable shapes for the openings 239 include, but are not limited to, circles, ovals,
and polygons, with hexagonal shaped openings 239 shown in Figure 2. The openings 239
can be regularly and evenly spaced in aligned ranks and files. Alternatively, the
openings 239 can be bilaterally staggered in the machine direction (MD) and cross-machine
direction (CD), as shown in Figure 2, where the machine direction refers to that direction
which is parallel to the flow of the web through the equipment, and the cross machine
direction is perpendicular to the machine direction. A foraminous imprinting member
219 having a continuous network web imprinting surface 222 and discrete isolated deflection
conduits 230 can be manufactured according to the teachings of the following U.S.
Patents which are incorporated herein by reference: U.S. Patent 4,514,345 issued April
30, 1985 to Johnson et al.; U.S. Patent 4,529,480 issued July 16, 1985 to Trokhan;
and U.S. Patent 5,098,522 issued March 24, 1992 to Smurkoski et al.; and 5,514,523
issued May 7, 1996 to Trokhan et al.
[0039] Referring to Figures 2 and 3, the foraminous imprinting member 219 can include a
woven reinforcement element 243 for strengthening the foraminous imprinting member
219. The reinforcement element 243 can include machine direction reinforcing strands
242 and cross machine direction reinforcing strands 241, though any convenient weave
pattern can be used. The openings in the woven reinforcement element 243 formed by
the interstices between the strands 241 and 242 are smaller than the size of the openings
239 of the deflection conduits 230. Together, the openings in the woven reinforcement
element 243 and the openings 239 of the deflection conduits 230 provide a continuous
passageway extending from the first face 220 to the second face 240 for carrying water
through the foraminous imprinting member 219. The reinforcement element 243 can also
provide a support surface for limiting deflection of the fibers into the deflection
conduits 230, and thereby help to prevent the formation of apertures in the portions
of the web associated with the deflection conduits 230, such as the relatively low
density domes 1084. Such apertures, or pinholing, can be caused by water or air flow
through the deflection conduits when a pressure difference exists across the web.
[0040] The area of the web imprinting surface 222, as a percentage of the total area of
the first web contacting surface 220, should be between about 15 percent to about
65 percent, and more preferably between about 20 percent to about 50 percent to provide
a desirable ratio of the areas of the relatively high density region 1083 and the
relatively low density domes 1084 shown in Figures 6 and 7. The size of the openings
239 of the deflection conduits 230 in the plane of the first face 220 can be expressed
in terms of effective free span. Effective free span is defined as the area of the
opening 239 in the plane of the first face 220 divided by one fourth of the perimeter
of the opening 239. The effective free span should be from about 0.25 to about 3.0
times the average length of the papermaking fibers used to form the embryonic web
120, and is preferably from about 0.5 to about 1.5 times the average length of the
papermaking fibers. The deflection conduits 230 can have a depth 232 (Figure 3) which
is between about 0.1 mm and about 1.0 mm.
[0041] In an alternative embodiment, the foraminous imprinting member 219 can comprise a
fabric belt formed of woven filaments. The web imprinting surface 222 can be formed
by discrete knuckles formed at the cross-over points of the woven filaments. Suitable
woven filament fabric belts for use as the foraminous imprinting member 219 are disclosed
in U.S. Patent 3,301,746 issued January 31, 1967 to Sanford et al., U.S. Patent 3,905,863
issued September 16, 1975 to Ayers, U.S. Patent 4,191,609 issued March 4, 1980 to
Trokhan, and U.S. Patent 4,239,065 issued December 16, 1980 to Trokhan, which patents
are incorporated herein by reference.
[0042] In another alternative embodiment, the foraminous imprinting member 219 can have
a first web contacting face 220 comprising a continuous patterned deflection conduit
230 encompassing a plurality of discrete, isolated web imprinting surfaces 222. Such
a foraminous imprinting member 219 can be used to form a molded web having a continuous,
relatively low density network region, and a plurality of discrete, relatively high
density regions dispersed throughout the continuous, relatively low density network.
Such a foraminous imprinting member is shown in Figure 11, as well as in U.S. Patent
4,514,345 issued April 30, 1985 to Johnson et al., which patent is incorporated herein
by reference.
[0043] In yet another embodiment, the foraminous imprinting member 219 can have a first
web contacting face 220 comprising a plurality of senucontinuous web imprinting surfaces
222. As used herein, a pattern of web imprinting surfaces 222 is considered to be
semicontinuous if a plurality of the imprinting surfaces 222 extend substantially
unbroken along any one direction on the web contacting face 220, and each imprinting
surface is spaced apart from adjacent imprinting surfaces 220 by a deflection conduit
230. The web contacting face 220 can have adjacent semicontinuous imprinting surfaces
222 spaced apart by semicontinuous deflection conduits 230. The semicontinuous imprinting
surfaces 222 can extend generally parallel to the machine or cross-machine directions,
or alternatively, extend along a direction forming an angle with respect to the machine
and cross-machine directions. Such a foraminous imprinting member is shown in Figure
12, as well as in U.S. Patent Application Serial Number 07/936,954, Papermaking Belt
Having Semicontinuous Pattern and Paper Made Thereon, filed August 26, 1992 in the
name of Ayers et al., which applications is incorporated herein by reference.
[0044] A third step in the practice of the present invention comprises transferring the
embryonic web 120 from the foraminous forming member 11 to the foraminous imprinting
member 219, to position the second web face 124 on the first web contacting face 220
of the foraminous imprinting member 219.
[0045] A fourth step in the practice of the present invention comprises deflecting a portion
of the papermaking fibers in the embryonic web 120 into the deflection conduit portion
230 of web contacting face 220, and removing water from the embryonic web 120 through
the deflection conduit portion 230 to form an intermediate web 120A of the papermaking
fibers. The embryonic web 120 preferably has a consistency of between about 3 and
about 20 percent at the point of transfer to facilitate deflection of the papermaking
fibers into the deflection conduit portion 230.
[0046] The steps of transferring the embryonic web 120 to the imprinting member 219 and
deflecting a portion of the papermaking fibers in the web 120 into the deflection
conduit portion 230 can be provided, at least in part, by applying a differential
fluid pressure to the embryonic web 120. For instance, the embryonic web 120 can be
vacuum transferred from the forming member 11 to the imprinting member 219, such as
by a vacuum box 126 shown in Figure 1, or alternatively, by a rotary pickup vacuum
roll (not shown). The pressure differential across the embryonic web 120 provided
by the vacuum source (e.g., the vacuum box 126) deflects the fibers into the deflection
conduit portion 230, and preferably removes water from the web through the deflection
conduit portion 230 to raise the consistency of the web to between about 18 and about
30 percent. The pressure differential across the embryonic web 120 can be between
about 13.5 kPa and about 40.6 kPa (between about 4 to about 12 inches of mercury).
The vacuum provided by the vacuum box 126 permits transfer of the embryonic web 120
to the foraminous imprinting member 219 and deflection of the fibers into the deflection
conduit portion 230 without compacting the embryonic web 120. Additional vacuum boxes
(not shown) can be included to further dewater the intermediate web 120A.
[0047] Referring to Figure 4, portions of the intermediate web 120A are shown deflected
into the deflection conduits 230 upstream of the compression nip 300, so that the
intermediate web 120A is non-monoplanar. The intermediate web 120A is shown having
a generally uniform thickness (distance between first and second web faces 122 and
124) upstream of the compression nip 300 to indicate that a portion of the intermediate
web 120A has been deflected into the imprinting member 219 without locally densifying
or compacting the intermediate web 120A upstream of the compression nip 300. Transfer
of the embryonic web 120 and deflection of the fibers in the embryonic web into the
deflection conduit portion 230 can be accomplished essentially simultaneously. Above
referenced U.S. Patent 4,529,480 is incorporated herein by reference for the purpose
of teaching a method for transferring an embryonic web to a foraminous member and
deflecting a portion of the papermaking fibers in the embryonic web into the foraminous
member.
[0048] A fifth step in the practice of the present invention comprises pressing the wet
intermediate web 120A in the compression nip 300 to form the molded web 120B Referring
to Figures 1 and 4, the intermediate web 120A is carried on the foraminous imprinting
member 219 from the foraminous forming member 11 and through the compression nip 300
formed between the opposed compression surfaces of roll 362 and shoe press assembly
700. In order to describe the operation of the compression nip 300, the imprinting
member 219, dewatering felts 320 and 360, and the paper web are drawn enlarged relative
to the roll 362 and the press assembly 700.
[0049] The first dewatering felt 320 is shown supported in the compression nip adjacent
the press shoe assembly 700, and is driven in the direction 321 around a plurality
of felt support rolls 324. The shoe press assembly 700 includes a fluid impervious
pressure belt 710, a pressure shoe 720, and pressure source P. The pressure shoe 720
can have a generally arcuate, concave surface 722. The pressure belt 710 travels in
a continuous path over the generally concave surface 722 and the guide rolls 712.
The pressure source P provides hydraulic fluid under pressure to a cavity (not shown)
in the pressure shoe 720. The pressurized fluid in the cavity urges the pressure belt
710 against the felt 320, and provides the loading of the compression nip 300. Shoe
press assemblies are disclosed generally in the following U.S. Patents, which are
incorporated herein by reference: U.S. 4,559,258 to Kiuchi; U.S. 3,974,026 to Emson
et al.; U.S. 4,287,021 to Justus et at.; U.S. 4,201,624 to Mohr et al.; U.S. 4,229,253
to Cronin; U.S. Patent 4,561,939 to Justus; U.S. 5,389,205 to Pajula et al.; U.S.
5,178,732 to Steiner et al.; U.S. 5,308,450 to Braun et al.
[0050] The outer surface of the pressure belt 710 takes on a generally arcuate, concave
shape as it passes over the pressure shoe 720, and provides a concave compression
surface facing oppositely to the convex compression surface provided by press roll
362. This portion of the outer surface of the pressure belt 710 passing over the pressure
shoe is designated 711 in Figure 4. The outer surface of the pressure belt 710 can
be smooth or grooved.
[0051] The convex compression surface provided by the press roll 362 in combination with
the oppositely facing concave compression surface provided by the shoe press assembly
700 provide an arcuate compression nip having machine direction length which is at
least about 7.6 cm (3.0 inch). In one embodiment, the compression nip 300 has a machine
direction length of between about 7.6 cm (3.0) to about 50.8 cm (20.0 inches), and
more preferably between about 10.2 cm (4.0 inches) and about 25.4 cm (10.0 inches).
[0052] The second dewatering felt 360 is shown supported in the compression nip 300 adjacent
the nip roll 362 and driven in the direction 361 around a plurality of felt support
rolls 364. A felt dewatering apparatus 370, such as a Uhie vacuum box can be associated
with each of the dewatering felts 320 and 360 to remove water transferred to the dewatering
felts from the intermediate web 120A.
[0053] The press roll 362 can have a generally smooth surface. Alternatively, the roll 362
can be grooved, or have a plurality of openings in flow communication with a source
of vacuum for facilitating water removal from the intermediate web 120A. The roll
362 can have a rubber coating 363, such as a bonehard rubber cover, which can be smooth,
grooved, or perforated. The rubber coating 363 shown in Figure 4 provides a convex
compression surface which faces oppositely to the concave compression surface 711
provided by the shoe press assembly 700.
[0054] The term "dewatering felt" as used herein refers to a member which is absorbent,
compressible, and flexible so that it is deformable to follow the contour of the non-monoplanar
intermediate web 120A on the imprinting member 219, and capable of receiving and containing
water pressed from an intermediate web 120A. The dewatering felts 320 and 360 can
be formed of natural materials, synthetic materials, or combinations thereof. A suitable
dewatering felt comprises a nonwoven batt of natural or synthetic fibers joined, such
as by needling, to a support structure formed of woven filaments. Suitable materials
from which the nonwoven batt can be formed include but are not limited to natural
fibers such as wool and synthetic fibers such as polyester and nylon. The fibers from
which the batt 240 is formed can have a denier of between about 3 and about 40 grams
per 9000 meters of filament length. The felt can have a layered construction, and
comprise a mixture of fiber types and sizes.
[0055] The dewatering felts 320 and 360 can have a thickness of between about 2 mm to about
5 mm, a basis weight of about 800 to about 2000 grams per square meter, an average
density (basis weight divided by thickness) of between about 0.35 gram per cubic centimeter
and about 0.45 gram per cubic centimeter, and an air permeability of between about
15 and about 110 cubic feet per minute per square foot, at a pressure differential
across the dewatering felt thickness of 0.12 kPa (0.5 inch of water).
[0056] The dewatering felt 320 can have a first surface 325 having a relatively high density,
relatively small pore size, and a second surface 327 having a relatively low density,
relatively large pore size. Likewise, the dewatering felt 360 can have a first surface
365 having a relatively high density, relatively small pore size, and a second surface
367 having a relatively low density, relatively large pore size.
[0057] The dewatering felts 320 and 360 can have a compressibility of between 20 and 80
percent, preferably between 30 and 70 percent, and more preferably between 40 and
60 percent. The "compressibility" as used herein is a measure of the percentage change
in thickness of the dewatering felt under a given loading defined below. The dewatering
felts 320 and 360 should also have a modulus of compression less than 68947 kPa (10000
psi), preferably less than 48265 kPa (7000 psi), more preferably less than 34475 kPa
(5000 psi), and most preferably between about 6895 kPa (1000) and about 27580 kPa
(4000 psi). The "modulus of compression" as used herein is a measure of the rate of
change of loading with change in thickness of the dewatering felt. The compressibility
and modulus of compression are measured using the following procedure. The dewatering
felt is placed on a papermaking fabric formed of woven polyester monofilaments having
a diameter of about 0.40 millimeter and having a square weave pattern of about 36
filaments per 2.54 cm (inch) in a first direction, and about 30 filaments per 2.54
cm (inch) in a second direction perpendicular to the first direction. The papermaking
fabric has thickness under no compressive loading of about 0.68 millimeter (0.027
inch). Such a papermaking fabric is commercially available from the Appleton Wire
Company of Appleton, Wisconsin. The dewatering felt is positioned so that the surface
of the dewatering felt which is normally in contact with the paper web is adjacent
the papermaking fabric. The felt-fabric pair is then compressed with a constant rate
tensile/compression tester, such as an Instron Model 4502 available from the Instron
Engineering Corporation of Canton, Mass. The tester has a circular compression foot
having a surface area of about 13 square centimeters (2.0 square inches) attached
to a crosshead moving at a rate of 5.08 centimeters per minute (2.0 inch per minute).
The thickness of the felt-fabric pair is measured at loads of 0 psi, 2058 kPa (300
psi), 3102 kPa (450 psi) and 4116 kPa (600 psi), where the load in psi is calculated
by dividing the load in pounds obtained from the tester load cell by the surface area
of the compression foot. The thickness of the fabric alone is also measured at 0 psi,
2058 kPa (300 psi), 3102 kPa (450 psi), and 4116 kPa (600 psi) loads. The compressibility
and modulus of compression in psi are calculated using the following equations:


where TFP0 TFP300 TFP450, and TFP600 are the thicknesses of the felt-fabric pair
at 0 psi, 2058 kPa (300 psi), 3102 kPa (450 psi) and 4116 kPa (600 psi) loads, respectively,
and TP0, TP300, TP450, and TP600 are the thicknesses of the fabric alone at 0 psi,
2058 kPa (300 psi), 3102 kPa (450 psi) and 4116 kPa (600 psi) loads, respectively.
Suitable dewatering felts 320 and 360 are commercially available as SUPERFINE DURAMESH,
style XY31620 from the Albany International Company of Albany, New York.
[0058] Alternatively, the dewatering felts 320 and 360 can have different constructions.
For instance, the felt 360 can be selected to have an air permeability of at least
about 30 cubic feet per minute per square foot. The felt 320 can have an air permeability
which is lower than that of felt 360. In one embodiment, felt 360 can be an AmFlex-3S
Style 5615 having a 1:1 batt to base ratio (1 pound batt material for every one pound
of woven base reinforcing structure) and a 3 over 40 layered batt construction (3
denier fibers over 40 denier fibers, where the 3 denier fibers are adjacent the surface
365 of the felt layer). Such a felt is available from Appleton Mills of Appleton,
Wisconsin and can have an air permeability of about 40 cubic feet per minute per square
foot. Felt 320 can be an AmSeam-2, Style 2732 having a 1:1 batt to base ratio and
a 3 over 6 layered batt construction. Such a felt is available from Appleton Mills
of Appleton, Wisconsin and can have an air permeability of about 25 cubic feet per
minute per square foot.
[0059] The intermediate web 120A and the web imprinting surface 222 are positioned intermediate
the first and second felt layers 320 and 360 in the compression nip 300. The first
felt layer 320 is positioned adjacent the first face 122 of the intermediate web 120A.
The web imprinting surface 222 is positioned adjacent the second face 124 of the web
120A. The second felt layer 360 is positioned in the compression nip 300 such that
the second felt layer 360 is in flow communication with the deflection conduit portion
230.
[0060] Referring to Figures 1 and 4, the first surface 325 of the first dewatering felt
320 is positioned adjacent the first face 122 of the intermediate web 120A as the
first dewatering felt 320 is driven over the belt 710. Similarly, the first surface
365 of the second dewatering felt 360 is positioned adjacent the second felt contacting
face 240 of the foraminous imprinting member 219 as the second dewatering felt 360
is driven around the nip roll 362. Accordingly, as the intermediate web 120A is carried
through the compression nip 300 on the foraminous imprinting fabric 219, the intermediate
web 120A, the imprinting fabric 219, and the first and second dewatering felts 320
and 360 are pressed together between the opposed compression surfaces of the nip 300.
Pressing the intermediate web 120A in the compression nip 300 further deflects the
paper making fibers into the deflection conduit portion 230 of the imprinting member
219, and removes water from the intermediate web 120A to form the molded web 120B.
The water removed from the web is received by and contained in the dewatering felts
320 and 360. Water is received by the dewatering felt 360 through the deflection conduit
portion 230 of the imprinting member 219.
[0061] The intermediate web 120A should have a consistency of between about 14 and about
80 percent at the entrance to the compression nip 300. More preferably, the intermediate
web 120A has a consistency between about 15 and about 35 percent at the entrance to
the nip 300. The papermaking fibers in an intermediate web 120A having such a preferred
consistency have relatively few fiber to fiber bonds, and can be relatively easily
rearranged and deflected into the deflection conduit portion 230 by the first dewatering
felt 320.
[0062] The intermediate web 120A is preferably pressed in the compression nip 300 at a nip
pressure of at least 689.5 kPa (100 pounds per square inch) (psi), and more preferably
at least 1379 kPa (200 psi) .In a preferred embodiment, the intermediate web 120A
is pressed in the compression nip 689.5 kPa (300) at a nip pressure greater than about
2758 kPa (400 pounds per square inch).
[0063] The machine direction nip length can be between about 7.6 cm (3.0 inches) and about
50.8 cm (20.0 inches). For a machine direction nip length between 10.2 cm (4.0 inches)
to 25.4 cm (10.0 inches), the press assembly 700 is preferably operated to provide
between about 180 kg (400 pounds) of force per lineal 2.54 cm (inch) of cross machine
direction nip width and about 4536 kg (10000 pounds) of force per lineal 2.54 cm (inch)
of cross machine direction nip width. The cross machine direction nip width is measured
perpendicular to the plane of Figure 4.
[0064] The nip pressure in psi is calculated by dividing the nip force exerted on the web
by the area of the nip 300. The force exerted by the nip 300 is controlled by the
pressure source P, and can be calculated using various force or pressure transducers
familiar to those skilled in the art. The area of nip 300 is measured using a sheet
of carbon paper and a sheet of plain white paper.
[0065] The carbon paper is placed on the sheet of plain paper. The carbon paper and the
sheet of plain paper are placed in the compression nip 300 with the first and second
dewatering felts 320, 360 and the imprinting member 219. The carbon paper is positioned
adjacent the first dewatering felt 320 and the plain paper is positioned adjacent
the imprinting member 219. The shoe press assembly 700 is then activated to provide
the desired press force, and the area of the nip 300 at that level of force is measured
from the imprint that the carbon paper imparts to the sheet of plain white paper.
Likewise, the machine direction nip length and the cross machine direction nip width
can be determined from the imprint that the carbon paper imparts to the sheet of plain
white paper.
[0066] The molded web 120B is preferably pressed to have a consistency of at least about
30 percent at the exit of the compression nip 300. Pressing the intermediate web 120A
as shown in Figure 1 molds the web to provide a first relatively high density region
1083 associated with the web imprinting surface 222 and a second relatively low density
region 1084 of the web associated with the deflection conduit portion 230. Pressing
the intermediate web 120A on an imprinting fabric 219 having a macroscopically monoplanar,
patterned, continuous network web imprinting surface 222, as shown in Figures 2-4,
provides a molded web 120B having a macroscopically monoplanar, patterned, continuous
network region 1083 having a relatively high density, and a plurality of discrete,
relatively low density domes 1084 dispersed throughout the continuous, relatively
high density network region 1083. Such a molded web 120B is shown in Figures 6 and
7. Such a molded web has the advantage that the continuous, relatively high density
network region 1083 provides a continuous loadpath for carrying tensile loads.
[0067] The molded web 120B is also characterized in having a third intermediate density
region 1074 extending intermediate the first and second regions 1083 and 1084, as
shown in Figure 8. The third region 1074 comprises a transition region 1073 positioned
adjacent the first relatively high density region 1083. The intermediate density region
1074 is formed as the first dewatering felt 320 draws papermaking fibers into the
deflection conduit portion 230, and has a tapered, generally trapezoidal cross-section.
[0068] The transition region 1073 is formed by compaction of the intermediate web 120A at
the perimeter of the deflection conduit portion 230. The region 1073 encloses the
intermediate density region 1074 to at least partially encircle each of the relatively
low density domes 1084. The transition region 1073 is characterized in having a thickness
T which is a local minima, and which is less than the thickness K of the relatively
high density region 1083, and a local density which is greater than the density of
the relatively high density region 1083. The relatively low density domes 1084 have
a thickness P which is a local maxima, and which is greater than the thickness K of
the relatively high density, continuous network region 1083. Without being limited
by theory, it is believed that the transition region 1073 acts as a hinge which enhances
web flexibility. The molded web 120B formed by the process shown in Figure 1 is characterized
in having relatively high tensile strength and flexibility for a given level of web
basis weight and web caliper H (Figure 8).
[0069] The difference in density between the relatively high density region 1083 and the
relatively low density region 1084 is provided, in part, by deflecting a portion of
the embryonic web 120 into the deflection conduit portion 230 of the imprinting member
219 to provide a non-monoplanar intermediate web 120A upstream of the compression
nip 300. A monoplanar web carried through the compression nip 300 would be subject
to some uniform compaction, thereby increasing the minimum density in the molded web
120B. The portions of the non-monoplanar intermediate web 120A in the deflection conduit
portion 230 avoid such uniform compaction, and therefore maintain a relatively low
density.
[0070] The difference in density between the relatively high density region and the relatively
low density region is also provided, in part, by pressing with both the first and
second dewatering felts 320 and 360 to remove water from both faces of the web and
prevent rewetting of the web. Water is expelled from the first and second web faces
122 and 124 as the intermediate web 120A is pressed in the compression nip 300. It
is important that the water expelled from both faces of the web be removed from both
faces of the web. Otherwise, the expelled water can re-enter the molded web 120B at
the exit of the nip 300. For instance, if the dewatering felt 360 is omitted, water
expelled from the second web face 124 into the deflection conduit portion 230 can
re-enter the molded web 120B through the deflection conduit portion 230 of the imprinting
member 219 at the exit of the nip 300.
[0071] Re-entry of water into the molded web 120B is undesirable because it decreases the
consistency of the molded web 120B, and reduces drying efficiency. In addition, re-entry
of water into the molded web 120B disrupts the fiber bonds formed during pressing
of the intermediate web 120A and de-densifies the web. In particular, water returning
to the molded web 120B will disrupt the bonds in the relatively high density region
1083, and reduce the density and load carrying capability of that region. Water returning
to the molded web 120B can also disrupt the fiber bonds forming the transition region
1073.
[0072] The dewatering felts 320 and 360 prevent rewetting of the molded web through both
web faces 122 and 124, and thereby help to maintain the relatively high density region
1083 and the transition region 1073. In some embodiments it can be desirable to remove
the first dewatering felt 320 from the first face 122 of the molded web 120B at the
exit of the compression nip 300 to prevent water held in the dewatering felt 320 from
rewetting the first face 122 of the web. Similarly, it can be desirable to remove
the second dewatering felt 360 from the imprinting member 219 at the nip exit to prevent
water held in the dewatering felt 360 from re-entering the web through the deflection
conduit portion 230. In the embodiment shown in Figures 1 and 4, the first and second
dewatering felts 320 and 360 can be supported such that they are separated from the
web at the exit of the nip 300.
[0073] Pressing the web, felt layers, and imprinting member in a nip having a machine direction
length of at least about 3.0 inches can improve dewatering of the web. For a given
paper machine speed, the relatively long nip length increases the residence time of
the web and the felts in the nip. Accordingly, water can be more effectively removed
from the web, even at higher machine speeds.
[0074] A sixth step in the practice of the present invention can comprise pre-drying the
molded web 120B, such as with a through-air dryer 400 as shown in Figure 1. The molded
web 120B can be pre-dried by directing a drying gas, such as heated air, through the
molded web 120B. In one embodiment, the heated air is directed first through the molded
web 120B from the first web face 122 to the second web face 124, and subsequently
through the deflection conduit portion 230 of the imprinting member 219 on which the
molded web is carried. The air directed through the molded web 120B partially dries
the molded web 120B. In addition, without being limited by theory, it is believed
that air passing through the portion of the web associated with the deflection conduit
portion 230 can further deflect the web into the deflection conduit portion 230, and
reduce the density of the relatively low density region 1084, thereby increasing the
bulk and apparent softness of the molded web 120B. In one embodiment the molded web
120B can have a consistency of between about 30 and about 65 percent upon entering
the through air dryer 400, and a consistency of between about 40 and about 80 upon
exiting the through air dryer 400.
[0075] Referring to Figure 1, the through air dryer 400 can comprise a hollow rotating drum
410. The molded web 120B can be carried around the hollow drum 410 on the imprinting
member 219, and heated air can be directed radially outward from the hollow drum 410
to pass through the web 120B and the imprinting member 219. Alternatively, the heated
air can be directed radially inward (not shown). Suitable through air dryers for use
in practicing the present invention are disclosed in U.S. Patent 3,303,576 issued
May 26, 1965 to Sisson and U.S. Patent 5,274,930 issued January 4, 1994 to Ensign
et al., which patents are incorporated herein by reference. Alternatively, one or
more through air dryers 400 or other suitable drying devices can be located upstream
of the nip 300 to partially dry the web prior to pressing the web in the nip 300.
[0076] A seventh step in the practice of the present invention can comprise impressing the
web imprinting surface 222 of the foraminous imprinting member 219 into the molded
web 120B to form an imprinted web 120C. Impressing the web imprinting surface 222
into the molded web 120B serves to further density the relatively high density region
1083 of the molded web, thereby increasing the difference in density between the regions
1083 and 1084. Referring to Figure 1, the molded web 120B is carried on the imprinting
member 219 and interposed between the imprinting member 219 and an impression surface
at a nip 490. The impression surface can comprise a surface 512 of a heated drying
drum 510, and the nip 490 can be formed between a roll 209 and the dryer drum 510.
The imprinted web 120C can then be adhered to the surface 512 of the dryer drum 510
with the aid of a creping adhesive, and finally dried. The dried, imprinted web 120C
can be foreshortened as it is removed from the dryer drum 510, such as by creping
the imprinted web 120C from the dryer drum with a doctor blade 524.
[0077] The method provided by the present invention is particularly useful for making paper
webs having a basis weight of between about 10 grams per square meter to about 65
grams per square meter. Such paper webs are suitable for use in the manufacture of
single and multiple ply tissue and paper towel products.
[0078] In an alternative embodiment of the present invention, the through air-dryer 400
in Figure 1 can be omitted. The second felt 360 can be positioned adjacent the second
face 240 of the imprinting member 219 as the molded web 120B is carried on the imprinting
member 219 from the nip 300 to the nip 490. The nip 490 can be formed between a vacuum
pressure roll and the Yankee drum 510.
[0079] An alternative embodiment of the present invention employs a composite imprinting
member 219, and is illustrated in Figures 5, 9 and 10. Referring to Figure 10, the
composite imprinting member 219 has a web patterning photopolymer layer 221 joined
to the surface 365 of a dewatering felt 360. The dewatering felt 360 comprises a nonwoven
batt 3610 which can be needled to a support structure comprising woven filaments 3620.
[0080] The photopolymer layer 221 has a macroscopically monoplanar, patterned continuous
network web imprinting surface 222. Such a composite imprinting member 219 can comprise
a photopolymer resin cast onto the surface of a dewatering felt. The following commonly
assigned U.S. Patent Applications are incorporated herein by reference for the purpose
of showing the construction of such a composite imprinting member: Serial Number 08/461,832
"Web Patterning Apparatus Comprising a Felt Layer and a Photosensitive Resin Layer,"
filed June 5, 1995 in the name of Trokhan, et al., which is a continuation in part
of U.S. Patent Application Serial Number 08/268,154 filed June 29, 1994; U.S. Serial
Number 08/391,372 "Method of Applying a Curable Resin to a substrate for Use in Papermaking"
filed February 15, 1995 in the name of Trokhan et al.; and "High Absorbence/Low Reflectance
Felts with a Pattern Layer" filed April 30, 1996 in the name of Ampulski et al.
[0081] In Figure 9, the embryonic web 120 is transferred to the photopolymer web imprinting
surface 222 of the composite imprinting member 219. The web is pressed in the nip
300 between the first felt 320 and the composite imprinting member 219, which comprises
the photopolymer web imprinting surface 222 and the second felt 360. The deflection
conduits 230 of the patterned photopolymer layer 221 are in flow communication with
the felt layer 360, as shown in Figure 10.
[0082] Figure 5 is an enlarged illustration of the nip 300 shown in Figure 9. The force
provided by the shoe press assembly urges the felt 320 against the web 120A, causing
discrete portions of the web 120A to be deflected into the deflection conduits 230,
and compacting a continuous network portion of the web 120A, thereby forming a molded
web 120B. At the exit of the nip 300, the felt 320 is removed from the molded web
120, and the molded web is carried on the composite imprinting member 219.
[0083] The molded web 120B is carried on the web imprinting surface 222 of the composite
web imprinting member to the nip 490. The nip 490 in Figure 9 is formed between a
pressure roll 299 and the Yankee drum 510. The pressure roll 299 can be a vacuum pressure
roll which removes water from the second felt 360 at the nip 490, or alternatively,
the pressure roll 299 can be a solid roll. With the composite imprinting member 219
positioned adjacent the face 124 of the molded web 120B, the web is carried on the
composite imprinting member 219 into the nip 490 to transfer the molded web 120B to
the Yankee drum 510.
[0084] The particular embodiments of the present invention which have been illustrated and
described in reference to the Figures are given as examples and are not intended to
limit the invention.
1. A method of forming a paper web comprising the steps of:
providing an aqueous dispersion of papermaking fibers;
providing a foraminous forming member (11);
providing a first dewatering felt layer; (320);
providing a second dewatering felt layer (360);
providing a compression nip (300) having a machine direction length of at least about
7.6 cm (about 3.0 inches), preferably between about 7.6 cm and about 50.8 cm (about
3 and about 20 inches), and more preferably between about 10.2 cm and about 25.4 cm
(about 4 and about 10 inches);
providing an imprinting member (219) having a web contacting face (220) comprising
a web imprinting surface (222) and a deflection conduit portion (230);
forming an embryonic web (120) of the papermaking fibers on the foraminous forming
member (11), the embryonic web having a first face and a second face;
transferring the embryonic web (120) from the foraminous forming member (11) to the
imprinting member (219) to position the second face of the embryonic web adjacent
the web contacting face of the foraminous imprinting member;
deflecting a portion of the papermaking fibers in the embryonic web into the deflection
conduit portion (230) and removing water from the embryonic web through the deflection
conduit portion to form an uncompacted, non-monoplanar intermediate web (120 A) of
the papermaking fibers;
positioning the web intermediate (120 A) the first and second felt layers (320, 360)
in the compression nip (300), wherein the first felt layer (320) is positioned adjacent
the first face (122) of the intermediate web wherein the web imprinting surface (222)
is positioned adjacent the second face (124) of the intermediate web, and wherein
the deflection conduit portion (230) is in flow communication with the second felt
layer (360), and
pressing the intermediate web in the compression nip to form a molded web,
separating the first dewatering felt layer (320) from the first face of the molded
web (120B) after the molded web passes through the compression nip (300);
supporting the molded web on the web imprinting surface after the molded web passes
through the compression nip;
providing an impression surface;
impressing the web imprinting surface (222) into the molded web by interposing the
molded web between the web imprinting surface and the impression surface to form an
imprinted web (120 C); and
drying the imprinted web.
2. The method of Claim 1 wherein the step of pressing the intermediate web comprises
pressing the intermediate web at a nip loading of between about 400 pounds per lineal
inch of cross machine direction nip width and about 10000 pounds per lineal inch of
cross machine direction nip width.
3. The method of Claims 2, wherein the imprinting member has a web contacting face comprising
a macroscopically monoplanar web imprinting surface.
4. The method of Claims 1, 2, or 3 wherein the imprinting member has a web contacting
face comprising a macroscopically monoplanar, patterned, continuous network web imprinting
surface defining within the foraminous imprinting member a plurality of discrete,
isolated, non-connected deflection conduits.
5. The method of Claims 1, 2, or 3 wherein the imprinting member has a web contacting
face comprising a plurality of discrete, isolated web imprinting surfaces.
6. The method of Claims 1, 2, or 3 wherein the imprinting member has a semi-continuous
web imprinting surface.
7. The method of Claims 1, 2, 3, 4, 5, or 6 wherein the imprinting member comprises a
composite imprinting member having the web imprinting surface joined to the second
felt layer.
8. The method of Claims 1, 2, 3, or 4 comprising the steps of:
providing an imprinting member having a first web contacting face comprising a macroscopically
monoplanar, patterned, continuous network web imprinting surface defining a plurality
of discrete, isolated, non-connected deflection conduits; and
pressing the intermediate web in the compression nip to form a molded web having a
patterned continuous network region having a relatively high density, and a plurality
of discrete domes having a relatively low density, the domes being dispersed throughout
the continuous, relatively high density network region, and isolated one from another
by, the relatively high density network region.
9. The method of Claims 1, 2, 3, 4, 5, 6, 7, or 8 further including the step of creping
the web.
1. Verfahren zum Bilden einer Papierbahn mit den Schritten:
Bereitstellen einer wäßrigen Dispersion aus Papier machenden Fasern;
Bereitstellen eines foraminösen Formungselements (11);
Bereitstellen einer ersten entwässernden Filzschicht (320);
Bereitstellen einer zweiten entwässernden Filzschicht (360);
Bereitstellen eines Komprimierungsspalts (300) mit einer Maschinenrichtungslänge von
wenigstens etwa 7,6 cm (3,0 Inch), vorzugsweise zwischen etwa 7,6 cm und etwa 50,8
cm (etwa 3 und etwa 20 Inch), und insbesondere zwischen etwa 10,2 cm und etwa 25,4
cm (etwa 4 und etwa 10 Inch);
Bereitstellen eines Eindrückelements (219) und einer Bahn berührenden Seite (220),
die eine Bahn-Eindrückoberfläche (222) und einen Ablenkkanalbereich (230) umfaßt;
Bilden einer embryonischen Bahn (120) aus den Papier machenden Fasern auf dem foraminösen
Formungselement (11), wobei die embryonische Bahn eine erste Seite und eine zweite
Seite hat;
Überführen der embryonischen Bahn (120) von dem foraminösen Formungselement (11) zu
dem Eindrückelement (219), um die zweite Seite der embryonischen Bahn angrenzend an
die bahnberührende Seite des foraminösen Eindrückelements zu positionieren;
Ablenken eines Teils der Papier machenden Fasern in der embryonischen Bahn in den
Ablenkkanalbereich (230) und Entfernen von Wasser aus der embryonischen Bahn durch
den Ablenkkanalbereich, um eine unkompaktierte, nicht monoplanare Zwischenbahn (120A)
aus den Papier machenden Fasern zu bilden;
Positionieren der Bahn (120A) zwischen der ersten und der zweiten Filzschicht (320,
360) in dem Komprimierungsspalt (300), wobei die erste Filzschicht (320) angrenzend
an die erste Seite (122) der Zwischenbahn positioniert ist, wobei die in die Bahn
eindrückende Oberfläche (222) angrenzend an die zweite Seite (124) der Zwischenbahn
positioniert ist und wobei der Ablenkkanalbereich (230) in Fließkommunikation mit
der zweiten Filzschicht (360) steht; und
Pressen der Zwischenbahn in dem Komprimierungsspalt, um eine geformte Bahn zu bilden,
Trennen der ersten entwässernden Filzschicht (320) von der ersten Seite der geformten
Bahn (120B), nachdem die geformte Bahn durch den Komprimierungsspalt (300) hindurch
gegangen ist;
Abstützen der geformten Bahn auf der in die Bahn eindrückenden Oberfläche, nachdem
die geformte Bahn durch den Komprimierungsspalt hindurch gegangen ist;
Bereitstellen einer Eindrückoberfläche;
Eindrücken der in die Bahn eindrückenden Oberfläche (222) in die geformte Bahn, indem
die geformte Bahn zwischen die in die Bahn eindrückende Oberfläche und der Eindrückoberfläche
positioniert wird, um eine eingedrückte Bahn (120C) zu bilden; und
Trocknen der eingedrückten Bahn.
2. Verfahren nach Anspruch 1, in welcher der Schritt des Pressens der Zwischenbahn ein
Pressen der Zwischenbahn mit einer Spaltlast von zwischen etwa 400 Pfund pro linearem
Inch der Spaltbreite in Quer-Maschinenrichtung und etwa 10.000 Pfund pro linearem
Inch der Spaltbreite in Quer-Maschinenreichtung umfaßt.
3. Verfahren nach Anspruch 2, in welchem das Eindrückelement eine bahnberührende Seite
mit einer makroskopisch monoplanaren, in die Bahn eindrückenden Oberfläche hat.
4. Verfahren nach den Ansprüchen 1, 2 oder 3, in welchem das Eindrückelement eine bahnberührende
Seite hat, die eine in die Bahn eindrückende Oberfläche mit einem makroskopisch monoplanaren,
gemusterten, kontinuierlichen Netzwerk hat, die in dem foraminösen Eindrückelement
eine Mehrzahl von diskreten, isolierten, nicht verbundenen Ablenkkanälen begrenzt.
5. Verfahren nach den Ansprüchen 1, 2 oder 3, in welchem das Eindrückelement eine in
die Bahn eindrückende Seite mit einer Mehrzahl von diskreten, isolierten, in die Bahn
eindrückenden Oberflächen hat.
6. Verfahren nach den Ansprüchen 1, 2 oder 3, in welchem das Eindrückelement eine semikontinuierliche
in die Bahn eindrückende Oberfläche hat.
7. Verfahren nach den Ansprüchen 1, 2, 3, 4, 5 oder 6, in welchem das Eindrückelement
ein zusammen gesetztes Eindrückelement hat, bei welchem die in die Bahn eindrückende
Oberfläche mit der zweiten Filzschicht verbunden ist.
8. Verfahren nach den Ansprüchen 1, 2, 3 oder 4, mit den Schritten:
Bereitstellen eines Eindrückelements mit einer ersten bahnberührenden Seite, mit einer
in die Bahn eindrückenden Oberfläche mit einem makroskopisch monoplanaren, gemusterten,
kontinuierlichen Netzwerk die eine Mehrzahl von diskreten, isolierten, nicht verbundenen
Ablenkkanälen begrenzt; und
Pressen der Zwischenbahn in dem komprimierenden Spalt, um eine geformte Bahn mit einer
gemusterten kontinuierlichen Netzwerkregion mit einer relativ hohen Dichte und eine
Mehrzahl von diskreten Wölbungen mit einer relativ geringen Dichte zu bilden, wobei
die Wölbungen über die Netzwerkregion mit der kontinuierlichen relativ hohen Dichte
verteilt und voneinander durch die Netzwerkregion mit der relativ hohen Dichte isoliert
sind.
9. Verfahren nach den Ansprüchen 1, 2, 3, 4, 5, 6, 7 oder 8, ferner mit dem Schritt eines
Kreppens der Bahn.
1. Procédé pour la fabrication d'une nappe de papier comprenant les étapes consistant
à :
prévoir une dispersion aqueuse de fibres à papier ;
prévoir un élément de formage foraminé (11) ;
prévoir une première couche d'égouttage en feutre (320) ;
prévoir une seconde couche d'égouttage en feutre (360) ;
prévoir un resserrement de compression (300) d'une longueur dans le sens machine d'au
moins 7,6 cm environ (3,0 pouces environ), de préférence comprise entre 7,6 cm et
50,8 cm environ (3 et 20 pouces environ) et encore plus de préférence entre 10,2 cm
et 25,4 cm (4 et 10 pouces environ) ;
prévoir un élément d'impression (219) présentant une face de contact avec la nappe
(220), comprenant une surface d'impression de la nappe (222) et une section d'un conduit
déflecteur (230) ;
fabriquer une nappe embryonnaire (120) avec les fibres à papier sur l'élément de formage
foraminé (11), cette nappe embryonnaire présentant une première et une seconde faces
;
transférer la nappe embryonnaire (120) de l'élément de formage foraminé (11) vers
l'élément d'impression (219) de sorte à positionner la seconde face de la nappe embryonnaire
de façon adjacente à la face de contact avec la nappe que présente l'élément d'impression
foraminé ;
dévier une partie des fibres à papier dans la nappe embryonnaire vers la section de
conduit déflecteur (230) et éliminer l'eau de la nappe embryonnaire par le biais de
la section de conduit déflecteur de sorte à obtenir une nappe intermédiaire réalisée
avec les fibres à papier (120 A), non compactée et non monoplanaire ;
positionner la nappe entre la première et la seconde couches en feutre (320, 360)
dans le resserrement de compression (300), la première couche de feutre (320) étant
adjacente à la première face (122) de la nappe intermédiaire, la surface d'impression
de la nappe (222) étant adjacente à la seconde face (124) de la nappe intermédiaire
et la section de conduit déflecteur (230) étant en communication d'écoulement avec
la seconde couche de feutre (360) ; et
presser la nappe intermédiaire dans le resserrement de compression pour fabriquer
une nappe moulée ;
séparer la première couche d'égouttage en feutre (320) de la première face de la nappe
moulée (120 B) après que celle-ci a traversé le resserrement de compression (300)
;
appuyer la nappe moulée sur la surface d'impression de nappe après que celle-ci a
traversé le resserrement de compression ;
prévoir une surface de pression ;
presser la surface d'impression de nappe (222) dans la nappe moulée en interposant
cette dernière entre la surface d'impression de nappe et la surface de pression de
sorte à obtenir une nappe imprimée (120 C) ; et
sécher la nappe imprimée.
2. Procédé selon la revendication 1 dans lequel l'étape consistant à presser la nappe
intermédiaire comprend le pressage de la nappe intermédiaire avec à la hauteur du
resserrement une force comprise entre environ 400 et 10000 livres par pouce courant
de largeur de resserrement mesurée dans le sens transversal.
3. Procédé selon les revendications 1 ou 2 dans lequel l'élément d'impression a une face
de contact avec la nappe qui comprend une surface d'impression de nappe macroscopiquement
monoplanaire.
4. Procédé selon les revendications 1, 2 ou 3 dans lequel l'élément d'impression a une
face de contact avec la nappe qui comprend une surface d'impression de nappe macroscopiquement
monoplanaire, à motifs et réseau continu, définissant à l'intérieur de l'élément d'impression
foraminé une pluralité de conduits déflecteurs discrets, isolés et non connectés.
5. Procédé selon les revendications 1, 2 ou 3 dans lequel l'élément d'impression a une
surface de contact avec la nappe comprenant une pluralité de surfaces d'impression
de nappe discrètes et isolées.
6. Procédé selon les revendications 1, 2 ou 3 dans lequel l'élément d'impression a une
surface d'impression de nappe semi-continue.
7. Procédé selon les revendications 1, 2, 3, 4, 5 ou 6 selon lequel l'élément d'impression
comprend un élément d'impression composite où la surface d'impression de nappe est
jointe à la seconde couche en feutre.
8. Procédé selon les revendications 1, 2, 3 ou 4 comprenant les étapes consistant à:
prévoir un élément d'impression présentant une première face de contact avec la nappe
qui comprend une surface d'impression de la nappe, macroscopiquement monoplanaire,
à motifs et réseau continu, définissant une pluralité de conduits déflecteurs discrets,
isolés et non connectés;
presser la nappe intermédiaire dans le resserrement de compression pour fabriquer
une nappe moulée qui présente une zone à motifs et réseau continu ayant une densité
relativement élevée, et une pluralité de renflements discrets ayant une densité relativement
faible, ces renflements étant répartis sur l'ensemble de la zone continue à réseau
à densité relativement élevée et séparés les uns des autres par la zone à réseau à
densité relativement élevée.
9. Procédé selon les revendications 1, 2, 3, 4, 5, 6, 7 ou 8, comprenant par ailleurs
une étape de crêpage de la nappe.